HR: 17:00h
AN: SH14A-05 [Abstracts]
TI: Acceleration of He+ and 3He Ions at CME-driven Interplanetary Shocks Near Earth
AU: * Allegrini, F
EM: fallegrini@swri.edu
AF: Southwest Research Insitute, Space Science and Engineering Division
P.O. Drawer 28510, San Antonio, TX 78228-0510
United States
AU: Desai, M I
EM: mdesai@swri.edu
AF: Southwest Research Insitute, Space Science and Engineering Division
P.O. Drawer 28510, San Antonio, TX 78228-0510
United States
AU: Kucharek, H
EM: Harald.Kucharek@unh.edu
AF: University of New Hampshire, Morse Hall
39 College Road, Durham, NH 03824
United States
AU: Mason, G M
EM: Glenn.Mason@jhuapl.edu
AF: Johns Hopkins University, Applied Physics Laboratory
Johns Hopkins Rd, Laurel, MD 20723-6099
United States
AU: Möbius, E
EM: eberhard.moebius@unh.edu
AF: University of New Hampshire, Morse Hall
39 College Road, Durham, NH 03824
United States
AU: Posner, A
EM: aposner@swri.edu
AF: Southwest Research Insitute, Space Science and Engineering Division
P.O. Drawer 28510, San Antonio, TX 78228-0510
United States
AB:
Interplanetary (IP) shocks driven by coronal mass ejections (CMEs) are known to accelerate ions up to 10s of MeV in energy.
Since the CMEs and their shocks propagate through the ambient solar wind, it was generally believed that their seed particles
originate from the solar wind. However, advanced composition instruments such as the Ultra Low-Energy Isotope Spectrometer
(ULEIS) and the Solar Energetic Particle Ionic Composition Analyzer (SEPICA) on board NASA's Advanced Composition Explorer
(ACE) have shown that a substantial fraction of such CME-driven IP shocks accelerate tracer ions like 3He and He+ that are
extremely rare in the thermal solar wind plasma. Since both these species are relatively more abundant in the energy region
between ~2-100 keV/nucleon, their mere presence in the accelerated populations points to an origin in the suprathermal
tail. In this paper, we will survey the ACE/ULEIS, ACE/SEPICA, and Wind/STICS measurements between August 1997 and December
2000 and identify all CME-driven IP shocks that accelerated both 3He and He+ ions. We will compare the measurements of these
rare ion species with those of the more common heavier ions from C-Fe. We will perform detailed case studies of individual
events along with a comprehensive statistical survey and investigate the ion injection and acceleration efficiencies as a
function of their mass-to-charge (M/Q) ratio. We will also compare properties of the accelerated ions with the locally
measured shock strength parameters.
DE: 2101 Coronal mass ejections (7513)
DE: 2114 Energetic particles (7514)
DE: 2139 Interplanetary shocks
DE: 2152 Pickup ions
SC: SPA-Solar and Heliospheric Physics [SH]
MN: Fall Meeting 2005